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A Cryo-Cooled Scanning SQUID Microscope for Imaging High-Frequency Magnetic Fields

机译:用于成像高频磁场的低温冷却SQUID显微镜

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One important application of scanning SQUID microscopes is fault detection in integrated circuits and multi-chip modules. However, the present generation of computer processors operate at over 1 GHz, well above the bandwidth of the present generation of SQUID microscopes. Towards this end, we present results on a cryo-cooled 4.2 K scanning SQUID microscope with a bandwidth of dc to 2 GHz and a sensitivity of about 50 nT per sample. We use a thin-film hysteretic Nb dc-SQUID and a pulsed sampling technique, rather than a non-hysteretic SQUID and a flux-locked loop, to overcome the bandwidth limitation of existing scanning SQUID microscopes. The microscope allows for non-contact images of time-varying magnetic field to be taken of room-temperature samples with time steps down to 50 ps and spatial resolution ultimately limited by the size of the SQUID. We present time-varying magnetic field images obtained with this scanning SQUID microscope and discuss the advantages and limitations of this method.
机译:扫描SQUID显微镜的一项重要应用是集成电路和多芯片模块中的故障检测。但是,当前这一代计算机处理器的工作频率超过1 GHz,远高于当前SQUID显微镜的带宽。为此,我们介绍了一种在4.2 k带宽的dc至2 GHz带宽,每个样品的灵敏度约为50 nT的低温冷却4.2 K扫描SQUID显微镜上的结果。我们使用薄膜磁滞Nb dc-SQUID和脉冲采样技术,而不是非磁滞SQUID和磁通锁环,来克服现有扫描SQUID显微镜的带宽限制。显微镜允许从室温样本中获取时变磁场的非接触图像,时间步长可降至50 ps,空间分辨率最终受SQUID尺寸的限制。我们介绍使用此扫描SQUID显微镜获得的时变磁场图像,并讨论此方法的优点和局限性。

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